ELECTROSTATIC POTENTIAL
Electrostatic Potentials and Capacitance

272229 Two points \(P\) and \(Q\) are maintained at the potentials of 10 V and -4 V , respectively. The work done in moving 100 electrons from \(P\) to \(Q\) is:

1 \(9.60 \times 10^{-17} \mathrm{~J}\)
2 \(-2.24 \times 10^{-16} \mathrm{~J}\)
3 \(2.24 \times 10^{-16} \mathrm{~J}\)
4 \(-9.60 \times 10^{-17} \mathrm{~J}\)
Electrostatic Potentials and Capacitance

272230 A ball of mass 1 g carrying a charge \(10^{-8} \mathrm{C}\) moves from a point \(A\) at potential 600 V to a point \(B\) at zero potential.
The change in its K.E. is

1 \(-6 \times 10^{-6} \mathrm{erg}\)
2 \(-6 \times 10^{-6} \mathrm{~J}\)
3 \(6 \times 10^{-6} \mathrm{~J}\)
4 \(6 \times 10^{-6} \mathrm{erg}\)
Electrostatic Potentials and Capacitance

272231 A point charge is kept at the centre of metallic insulated spherical shell. Then

1 electric fieldout side the sphere is zero
2 electric field inside the sphere is zero
3 net induced charge on the sphere is zero
4 electric potential inside the sphere is zero
Electrostatic Potentials and Capacitance

272226 \(\mathrm{A}, \mathrm{B}\) and C are three points in a uniform electric field. The electric potential is

1 maximum at B
2 maximum at\(C\)
3 same at all the three points\(\mathrm{A}, \mathrm{B}\) and C
4 maximumat \(A\)
Electrostatic Potentials and Capacitance

272229 Two points \(P\) and \(Q\) are maintained at the potentials of 10 V and -4 V , respectively. The work done in moving 100 electrons from \(P\) to \(Q\) is:

1 \(9.60 \times 10^{-17} \mathrm{~J}\)
2 \(-2.24 \times 10^{-16} \mathrm{~J}\)
3 \(2.24 \times 10^{-16} \mathrm{~J}\)
4 \(-9.60 \times 10^{-17} \mathrm{~J}\)
Electrostatic Potentials and Capacitance

272230 A ball of mass 1 g carrying a charge \(10^{-8} \mathrm{C}\) moves from a point \(A\) at potential 600 V to a point \(B\) at zero potential.
The change in its K.E. is

1 \(-6 \times 10^{-6} \mathrm{erg}\)
2 \(-6 \times 10^{-6} \mathrm{~J}\)
3 \(6 \times 10^{-6} \mathrm{~J}\)
4 \(6 \times 10^{-6} \mathrm{erg}\)
Electrostatic Potentials and Capacitance

272231 A point charge is kept at the centre of metallic insulated spherical shell. Then

1 electric fieldout side the sphere is zero
2 electric field inside the sphere is zero
3 net induced charge on the sphere is zero
4 electric potential inside the sphere is zero
Electrostatic Potentials and Capacitance

272226 \(\mathrm{A}, \mathrm{B}\) and C are three points in a uniform electric field. The electric potential is

1 maximum at B
2 maximum at\(C\)
3 same at all the three points\(\mathrm{A}, \mathrm{B}\) and C
4 maximumat \(A\)
Electrostatic Potentials and Capacitance

272229 Two points \(P\) and \(Q\) are maintained at the potentials of 10 V and -4 V , respectively. The work done in moving 100 electrons from \(P\) to \(Q\) is:

1 \(9.60 \times 10^{-17} \mathrm{~J}\)
2 \(-2.24 \times 10^{-16} \mathrm{~J}\)
3 \(2.24 \times 10^{-16} \mathrm{~J}\)
4 \(-9.60 \times 10^{-17} \mathrm{~J}\)
Electrostatic Potentials and Capacitance

272230 A ball of mass 1 g carrying a charge \(10^{-8} \mathrm{C}\) moves from a point \(A\) at potential 600 V to a point \(B\) at zero potential.
The change in its K.E. is

1 \(-6 \times 10^{-6} \mathrm{erg}\)
2 \(-6 \times 10^{-6} \mathrm{~J}\)
3 \(6 \times 10^{-6} \mathrm{~J}\)
4 \(6 \times 10^{-6} \mathrm{erg}\)
Electrostatic Potentials and Capacitance

272231 A point charge is kept at the centre of metallic insulated spherical shell. Then

1 electric fieldout side the sphere is zero
2 electric field inside the sphere is zero
3 net induced charge on the sphere is zero
4 electric potential inside the sphere is zero
Electrostatic Potentials and Capacitance

272226 \(\mathrm{A}, \mathrm{B}\) and C are three points in a uniform electric field. The electric potential is

1 maximum at B
2 maximum at\(C\)
3 same at all the three points\(\mathrm{A}, \mathrm{B}\) and C
4 maximumat \(A\)
Electrostatic Potentials and Capacitance

272229 Two points \(P\) and \(Q\) are maintained at the potentials of 10 V and -4 V , respectively. The work done in moving 100 electrons from \(P\) to \(Q\) is:

1 \(9.60 \times 10^{-17} \mathrm{~J}\)
2 \(-2.24 \times 10^{-16} \mathrm{~J}\)
3 \(2.24 \times 10^{-16} \mathrm{~J}\)
4 \(-9.60 \times 10^{-17} \mathrm{~J}\)
Electrostatic Potentials and Capacitance

272230 A ball of mass 1 g carrying a charge \(10^{-8} \mathrm{C}\) moves from a point \(A\) at potential 600 V to a point \(B\) at zero potential.
The change in its K.E. is

1 \(-6 \times 10^{-6} \mathrm{erg}\)
2 \(-6 \times 10^{-6} \mathrm{~J}\)
3 \(6 \times 10^{-6} \mathrm{~J}\)
4 \(6 \times 10^{-6} \mathrm{erg}\)
Electrostatic Potentials and Capacitance

272231 A point charge is kept at the centre of metallic insulated spherical shell. Then

1 electric fieldout side the sphere is zero
2 electric field inside the sphere is zero
3 net induced charge on the sphere is zero
4 electric potential inside the sphere is zero
Electrostatic Potentials and Capacitance

272226 \(\mathrm{A}, \mathrm{B}\) and C are three points in a uniform electric field. The electric potential is

1 maximum at B
2 maximum at\(C\)
3 same at all the three points\(\mathrm{A}, \mathrm{B}\) and C
4 maximumat \(A\)